具有布朗运动效应的恒磁场作用下不同纳米流体在方形腔中的自然对流

M. Abdelaziz, W. El-Maghlany, A. S. Ismail
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引用次数: 1

摘要

用数值方法研究了水-氧化铝纳米流体填充方形腔内的自然对流。上、下、左表面绝缘。右壁处于低温状态,两个热源处于高温状态。源垂直附着在空腔的水平壁上。在水平方向上施加均匀的磁场。利用ku - kleinstreuer模型计算了纳米流体的有效导热系数和黏度,该模型实现了纳米颗粒的布朗运动效应。假定稳态层流状态。用有限体积法求解质量、动量和能量守恒方程。本文报道了瑞利数、固体体积分数和哈特曼数对流线和等温线影响的数值结果。此外,给出了各种参数条件下平均努塞尔数的计算结果。在本研究中,瑞利数为103 ~ 105,哈特曼数为0 ~ 60,固体体积分数为0 ~ 0.06,而代表水的普朗特数为6.2。结果表明:传热速率随哈特曼数的增大而减小,随瑞利数和体积分数的增大而增大;热源的位置、长度和强度对换热速率有重要影响。此外,研究了纳米流体类型的影响,发现水- cu纳米流体比水- al2o3、水- cuo和水- tio2纳米流体更能促进传热。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Natural Convection in a Square Cavity Utilizing Different Nanofluids in Presence of Constant Magnetic Field With Brownian Motion Effect
Natural convection in a square cavity filled with water-Al2 O3 nanofluid is studied numerically. Upper, lower, and left surfaces are insulated. Right wall is at low temperature, while two heat sources are kept at high temperature. The sources are vertically attached to the horizontal walls of a cavity . A uniform magnetic field is applied in a horizontal direction. Effective thermal conductivity and viscosity of nanofluids are obtained using Koo-Kleinstreuer model which implements the Brownian motion of nanoparticles effect. Steady state laminar regime is assumed. The conservation of mass, momentum, and energy equations are solved using finite volume method. The numerical results are reported for the effect of Rayleigh number, solid volume fraction, and Hartmann number on the streamlines as well as the isotherms. In addition, the results for average Nusselt number are presented for various parametric conditions. This study is presented in the following ranges, Rayleigh number from 103 to 105, Hartmann number from 0 to 60, and solid volume fraction from 0 to 0.06, while the Prandtl number which represents water is kept constant at 6.2. The results showed that heat transfer rate decreases with the rise of Hartmann number and increases with the rise of Rayleigh number, and volume fraction. Moreover, results showed that heat sources positions, lengths and intensities have crucial effect on heat transfer rate. Additionally, the effect of nanofluids type was studied, it was found that water-Cu nanofluid enhances the heat transfer better than water-Al2O3, water-CuO and water-TiO2 nanofluids.
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